Small SWAP 3D Imaging Flash Ladar for Small Tactical Unmanned Air Systems

被引:1
|
作者
Bird, Alan [1 ]
Anderson, Scott A. [1 ]
Wojcik, Michael [1 ]
Budge, Scott E. [2 ]
机构
[1] Space Dynam Lab, North Logan, UT 84341 USA
[2] Utah State Univ, Logan, UT 84322 USA
关键词
ladar; Small Tactical Unmanned Aircraft System; STUAS; flash ladar; flash lidar; 3D imaging; SWAP; UAV;
D O I
10.1117/12.2177222
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
The Space Dynamics Laboratory (SDL), working with Naval Research Laboratory (NRL) and industry leaders Advanced Scientific Concepts (ASC) and Hood Technology Corporation, has developed a small SWAP (size, weight, and power) 3D imaging flash ladar (LAser Detection And Ranging) sensor system concept design for small tactical unmanned air systems (STUAS). The design utilizes an ASC 3D flash ladar camera and laser in a Hood Technology gyro-stabilized gimbal system. The design is an autonomous, intelligent, geo-aware sensor system that supplies real-time 3D terrain and target images. Flash ladar and visible camera data are processed at the sensor using a custom digitizer/frame grabber with compression. Mounted in the aft housing are power, controls, processing computers, and GPS/INS. The onboard processor controls pointing and handles image data, detection algorithms and queuing. The small SWAP 3D imaging flash ladar sensor system generates georeferenced terrain and target images with a low probability of false return and <10 cm range accuracy through foliage in real-time. The 3D imaging flash ladar is designed for a STUAS with a complete system SWAP estimate of <9 kg, <0.2 m(3) and <350 W power. The system is modeled using LadarSIM, a MATLAB (R) and Simulink (R)-based ladar system simulator designed and developed by the Center for Advanced Imaging Ladar (CAIL) at Utah State University. We will present the concept design and modeled performance predictions.
引用
收藏
页数:8
相关论文
共 50 条
  • [41] Bringing 3D to the Small Screen
    Ortiz, Sixto, Jr.
    COMPUTER, 2011, 44 (10) : 11 - 13
  • [42] The Application of Iterative Closest Point (ICP) Registration to Improve 3D Terrain Mapping Estimates Using the FLASH 3D LADAR System
    Woods, Jack
    Armstrong, Ernest E.
    Armbruster, Walter
    Richmond, Richard
    LASER RADAR TECHNOLOGY AND APPLICATIONS XV, 2010, 7684
  • [43] Experimental 3D imaging of metallic small spheres by a linear distributional approach
    Buonanno, A.
    Solimene, R.
    Pierri, R.
    2009 EUROPEAN MICROWAVE CONFERENCE, VOLS 1-3, 2009, : 1638 - +
  • [44] Strategies for Improved 3D Small-Tip Fast Recovery Imaging
    Sun, Hao
    Fessler, Jeffrey A.
    Noll, Douglas C.
    Nielsen, Jon-Fredrik
    MAGNETIC RESONANCE IN MEDICINE, 2014, 72 (02) : 389 - 398
  • [45] Scene-based Algorithm for Range/Intensity Estimation Correction for the FLASH 3D LADAR System
    Jordan, Steven
    Armstrong, Ernest
    Larsson, Hakan
    Gebhardt, Matthew
    Steinvall, Ove
    LASER RADAR TECHNOLOGY AND APPLICATIONS XV, 2010, 7684
  • [46] 3D photoacoustic imaging system for in vivo studies of small animal models
    Zhang, Edward Z.
    Laufer, Jan
    Pedley, R. Barbara
    Beard, Paul
    PHOTONS PLUS ULTRASOUND: IMAGING AND SENSING 2008: THE NINTH CONFERENCE ON BIOMEDICAL THERMOACOUSTICS, OPTOACOUSTICS, AND ACOUSTIC-OPTICS, 2008, 6856
  • [47] I-131 3D Compton imaging with a small whole gamma imaging prototype
    Akamatsu, Go
    Takyu, Sodai
    Tashima, Hideaki
    Wakizaka, Hidekatsu
    Yamaguchi, Mitsutaka
    Kawachi, Naoki
    Sakai, Makoto
    Kurosawa, Shunsuke
    Shimazoe, Kenji
    Nishikido, Fumihiko
    Yoshida, Eiji
    Takahashi, Miwako
    Yamaya, Taiga
    JOURNAL OF NUCLEAR MEDICINE, 2023, 64
  • [48] Discrimination of multiple ranges per pixel in 3D FLASH LADAR while minimizing the effects of diffraction
    Neff, Brian J.
    Cain, Stephen C.
    Martin, Richard K.
    UNCONVENTIONAL IMAGING, WAVEFRONT SENSING, AND ADAPTIVE CODED APERTURE IMAGING AND NON-IMAGING SENSOR SYSTEMS, 2011, 8165
  • [49] Radiative heat loss estimation of building envelopes based on 3D thermographic models utilizing small unmanned aerial systems (sUAS)
    Leggiero, Mark
    Andrew, Bradley
    Elliott, Ryan
    Indergaard, John
    Sharma, J. B.
    Vogel, Thomas
    ENERGY AND BUILDINGS, 2021, 244
  • [50] Low Cost Autonomous Battery Replacement System for Quadrotor Small Unmanned Aerial Systems (sUAS) using 3D Printing Components
    Zhao, Tiebiao
    Mellos, Gregory
    Currier, Chris
    Martinez, Noe
    Bonnin, Alexis
    Chen, YangQuan
    2018 INTERNATIONAL CONFERENCE ON UNMANNED AIRCRAFT SYSTEMS (ICUAS), 2018, : 103 - 107